High-speed dynamics, damping, and relaxation times in submicrometer spin-valve devices

Citation
Se. Russek et al., High-speed dynamics, damping, and relaxation times in submicrometer spin-valve devices, J APPL PHYS, 87(9), 2000, pp. 7070-7072
Citations number
8
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Journal title
JOURNAL OF APPLIED PHYSICS
ISSN journal
00218979 → ACNP
Volume
87
Issue
9
Year of publication
2000
Part
3
Pages
7070 - 7072
Database
ISI
SICI code
0021-8979(20000501)87:9<7070:HDDART>2.0.ZU;2-Y
Abstract
The dynamical response of spin-valve devices with linewidths of 0.8 mu m ha s been measured after excitation with 160 ps magnetic impulses. The devices show resonant frequencies of 2-4 GHz which determine the upper limit of th eir operation frequency. The dynamical response can be fit with Landau-Lifs hitz models to extract an effective uniform-mode damping constant, alpha(um ). The measured values of alpha(um) were between 0.04 and 0.01 depending on the magnitude of the longitudinal bias field. The appropriate damping coef ficient for use in micromagnetic modeling, alpha(mm), was extracted from th e dynamical response with large longitudinal bias field. This value was use d to model the switching of a 0.1 mu mx1.0 mu m magnetoresistive random acc ess memory cell. The micromagnetic model included shape disorder that is ex pected to be found in real devices. The simulations showed that, while the magnetization reverses rapidly (< 0.5 ns), it took several nanoseconds for the energy to be removed from the magnetic system. The switching energy was stored in short wavelength magnetic fluctuations that could dramatically a ffect the re-reversal process 1-2 ns after the first reversal. [S0021-8979( 00)70908-X].